Shi Zhaohua, Han Qingxin, Yang Lizi, Yang Huan, Tang Xiaoliang, Dou Wei, Li Zhiqi, Zhang Yange, Shao Yongliang, Guan Liping, Liu Weisheng
Key Laboratory of Nonferrous Metals Chemistry and Resources Utilization of Gansu Province and State Key Laboratory of Applied Organic Chemistry, College of Chemistry and Chemical Engineering, Lanzhou University, Lanzhou 730000 (P. R. China), Fax: (+86) 931-8912582.
Chemistry. 2015 Jan 2;21(1):290-7. doi: 10.1002/chem.201404224. Epub 2014 Oct 24.
A new quinoline-based probe was designed that shows one-photon ratiometric and two-photon off-on changes upon detecting Cd(2+) . It exhibits fluorescence emission at 407 nm originating from quinoline groups in Tris-HCl (25 mM, pH 7.40), H2 O/EtOH (8:2, v/v). Coordination with Cd(2+) causes quenching of the emission at 407 nm and simultaneously yields a remarkable redshift of the emission maximum to 500 nm with an isoemissive point at 439 nm owing to an intramolecular charge-transfer mechanism. Thus, dual-emission ratiometric measurement with a large redshift (Δλ=93 nm) and significant changes in the ratio (F500 /F439 ) of the emission intensity (R/R0 up to 27) is established. Moreover, the sensor H2 L displays excellent selectivity response, high sensitive fluorescence enhancement, and strong binding ability to Cd(2+). Coordination properties of H2 L towards Cd(2+) were fully investigated by absorption/fluorescence spectroscopy, which indicated the formation of a 2:1 H2 L/Cd(2+) complex. All complexes were characterized by X-ray crystallography, and TD-DFT calculations were performed to understand the origin of optical selectivity shown by H2 L. Two-photon fluorescence microscopy experiments have demonstrated that H2 L could be used in live cells for the detection of Cd(2+).
设计了一种基于喹啉的新型探针,该探针在检测Cd(2+)时显示出单光子比率变化和双光子开-关变化。它在Tris-HCl(25 mM,pH 7.40)、H2O/EtOH(8:2,v/v)中于407 nm处呈现源自喹啉基团的荧光发射。与Cd(2+)配位会导致407 nm处的发射猝灭,同时由于分子内电荷转移机制,发射最大值显著红移至500 nm,等发射点在439 nm处。因此,建立了具有大红移(Δλ = 93 nm)和发射强度比(F500/F439)显著变化(R/R0高达27)的双发射比率测量方法。此外,传感器H2L对Cd(2+)表现出优异的选择性响应、高灵敏度荧光增强和强结合能力。通过吸收/荧光光谱对H2L与Cd(2+)的配位性质进行了全面研究,结果表明形成了2:1的H2L/Cd(2+)配合物。所有配合物均通过X射线晶体学进行了表征,并进行了TD-DFT计算以了解H2L表现出的光学选择性的起源。双光子荧光显微镜实验表明,H2L可用于活细胞中Cd(2+)的检测。